Unveiling Spin State‐Dependent Micropollutant Removal using Single‐Atom Covalent Triazine Framework

Author:

Zhu Chao1,Lu Lun2,Fang Qile3,Song Shuang1,Chen Baoliang4,Shen Yi1ORCID

Affiliation:

1. Key Laboratory of Microbial Technology for Industrial Pollution Control of Zhejiang Province College of Environment Zhejiang University of Technology Hangzhou 310032 P. R. China

2. State Environmental Protection Key Laboratory of Environmental Pollution Health Risk Assessment Ministry of Ecology and Environment South China Institute of Environmental Sciences Guangzhou 510655 P. R. China

3. Advanced Institute of Natural Sciences Beijing Normal University at Zhuhai Zhuhai 519087 P. R. China

4. Department of Environmental Science Zhejiang University Hangzhou 310058 P. R. China

Abstract

AbstractSingle‐atom materials, with unique electronic structure and maximized atom utilization, have shown huge application potential in the remediation of emerging organic pollutants (EOPs), but revealing intrinsic reaction mechanisms at spin state level remains a formidable challenge. Herein, a single‐atom Ti‐loaded covalent organic framework (Ti1/CTF) is constructed for two‐stage process that involved adsorption and photocatalytic synergy, and the essential role of the electronic spin state in regulating the intrinsic activity of the material is evidenced. Spin‐polarized Ti1N3/CTF‐10 considerably enhances the adsorption capacity (453.285 µmol g−1) and degradation kinetics (2.263 h−1, 17.0‐fold faster than CTF‐0) for 2,2,4,4'‐tetrehydroxybenzophenone (BP‐2) and provides long‐term stability (93.3% BP‐2 removal in seven cycles) and favorable cost‐effectiveness (4.45 kWh∙m−3electrical energy per order) in natural water applications. Theoretical calculations and experimental results suggest that the Ti1N3moieties of single‐atom Ti bonded to pyridine and triazine N induce electron spin‐down polarization near the Fermi energy level of the active site, providing a strong dipole force and motive power for electron transfer. This study provides new insights into the adsorption, activation, and photodegradation of EOPs at the material interface from the electronic spin level and demonstrates promising solutions for water micropollution control.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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